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A Straightforward Convergence Method for ICCG Simulation of Multiloop and Time-Stepping FE Model of Synchronous Generators with Simultaneous AC and Rectified DC Connections

机译:具有同声AC和校正直流连接的同步发电机多环和时间阶梯FE模型的ICCG模拟直接收敛方法

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摘要

Now electric machines integrate with power electronics to form inseparable systems in lots of applications for high performance. For such systems, two kinds of nonlinearities, the magnetic nonlinearity of iron core and the circuit nonlinearity caused by power electronics devices, coexist at the same time, which makes simulation time-consuming. In this paper, the multiloop model combined with FE model of AC-DC synchronous generators, as one example of electric machine with power electronics system, is set up. FE method is applied for magnetic nonlinearity and variable-step variable-topology simulation method is applied for circuit nonlinearity. In order to improve the simulation speed, the incomplete Cholesky conjugate gradient (ICCG) method is used to solve the state equation. However, when power electronics device switches off, the convergence difficulty occurs. So a straightforward approach to achieve convergence of simulation is proposed. At last, the simulation results are compared with the experiments.
机译:现在,电机与电力电子设备集成,可以在许多应用中形成不可分割的系统,以实现高性能。对于这种系统,两种非线性,铁芯的磁性非线性以及由电力电子设备引起的电路非线性,同时共存,这使得模拟耗时。本文建立了Multiplop模型与AC-DC同步发电机的FE模型相结合,作为电力电子系统电机的一个例子。 FE方法应用于磁性非线性,可变步骤可变拓扑仿真方法应用于电路非线性。为了提高仿真速度,不完全的Cholesky缀合物梯度(ICCG)方法用于解决状态等式。但是,当电力电子设备关闭时,会发生收敛困难。因此,提出了实现仿真收敛的直接方法。最后,将模拟结果与实验进行了比较。

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